EP0728101B1 - Leading edge slat/wing combination - Google Patents
Leading edge slat/wing combination Download PDFInfo
- Publication number
- EP0728101B1 EP0728101B1 EP95900528A EP95900528A EP0728101B1 EP 0728101 B1 EP0728101 B1 EP 0728101B1 EP 95900528 A EP95900528 A EP 95900528A EP 95900528 A EP95900528 A EP 95900528A EP 0728101 B1 EP0728101 B1 EP 0728101B1
- Authority
- EP
- European Patent Office
- Prior art keywords
- slat
- fixed wing
- surface portion
- location
- leading edge
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
- Expired - Lifetime
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- B—PERFORMING OPERATIONS; TRANSPORTING
- B64—AIRCRAFT; AVIATION; COSMONAUTICS
- B64C—AEROPLANES; HELICOPTERS
- B64C9/00—Adjustable control surfaces or members, e.g. rudders
- B64C9/14—Adjustable control surfaces or members, e.g. rudders forming slots
- B64C9/22—Adjustable control surfaces or members, e.g. rudders forming slots at the front of the wing
- B64C9/24—Adjustable control surfaces or members, e.g. rudders forming slots at the front of the wing by single flap
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- Y—GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
- Y02—TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
- Y02T—CLIMATE CHANGE MITIGATION TECHNOLOGIES RELATED TO TRANSPORTATION
- Y02T50/00—Aeronautics or air transport
- Y02T50/30—Wing lift efficiency
Definitions
- the present invention relates to a slat/wing combination, and more particularly to a leading edge slat fixed wing combination where there are carrier tracks that move the leading edge slat from its cruise position to its intermediate take-off position and to its high lift position.
- leading edge and trailing edge devices which are mounted to a fixed wing structure.
- these leading and trailing edge devices are in retracted position to provide with the fixed wing an optimized aerodynamic configuration.
- leading and trailing edge devices are generally moved toward intermediate positions which optimize performance of the wing during the take-off and climb, where improved lift performance is needed, but drag still needs to be kept within reasonable limits.
- the third operating configuration is the high lift position, where the leading and trailing edge devices are fully deployed to provide adequate lift at relatively low speeds. This high lift configuration is commonly used when the aircraft is landing.
- Leading edge devices are commonly in the forms of slats which in the cruise configuration conceal the forward and upper forward surface portion of the wing, with the leading edge of the slat forming the leading edge of the wing/slat combination in cruise configuration.
- the trailing edge of the leading edge slat is positioned immediately adjacent to the upper surface of the fixed wing so that it forms, as much as possible, a continuous upper aerodynamic surface for the slat/wing combination in the cruise configuration.
- the slat In the take-off and climb configuration, the slat is moved forward to an intermediate location to extend the effective cord length of the wing, and is also generally angled downwardly to some extent to increase the camber of the wing. In some instances, it is desirable to have the trailing edge of the slat be positioned to be in contact with the upper forward fixed wing surface portion to form a continuous upper aerodynamic surface of the slat/wing combination. However, in some arrangements a slot is formed between the slat and the forward portion of the fixed wing in the take-off position.
- the slat In the high lift configuration, the slat is generally moved further forwardly from the take-off and climb position so that the slat has a yet greater downward slant so as to increase the camber of the slat/wing combination, and also so that the slat forms with the fixed wing an aerodynamic slot which results in airflow from beneath the slat upwardly through the slot and over the upper forward surface portion of the fixed wing.
- leading edge slat assemblies For at least the past three decades, one common way for providing leading edge slat assemblies has been to use an arcuately shaped carrier track that moves along its length in a circularly curved arcuate path from the cruise position, through the intermediate take-off and climb position to the high lift landing position.
- the aircraft which have used and still use this particular arrangement for the leading edge slat are the Boeing 727, 737, 757 and 767.
- Such slat assemblies comprise a main arcuately shaped carrier track having a forward end to which the slat is pivotally mounted, with this carrier track moving in an arcuate path between rollers that maintain the travel of the carrier track along this fixed arcuate path.
- the slat was fixedly attached to the carrier track and formed a slat or gap with the fixed wing at both the take-off and climb position and also in the high-lift landing position.
- auxiliary track subassembly where there is a moveable arm member having its forward end fixedly attached to the slat, with the rear end of the arm member being positioned in a contoured groove of a stationary guide member.
- the carrier track is arranged so that the trailing edge of the slat is in engagement with (or at least in close proximity to) the fixed wing upper leading edge surface portion.
- the slat needs to be rotated to a position that requires angular movement of the slat relative to the carrier track.
- the slat/fixed wing combination of the present invention comprises a fixed wing having a leading edge portion, an upper surface comprising a concealed forward nose and upper surface portion, and a main upper surface portion located rearwardly of the concealed forward nose and upper surface portion, and also a lower surface.
- a slat having a leading edge, a trailing edge, and a forward and upper surface portion extending from said leading edge to said trailing edge.
- the slat is mounted to the leading edge portion of the fixed wing in a manner to be movable between three positions, namely:
- the fixed wing has a fixed wing outer contour envelope contained within said upper and lower surfaces of the fixed wing.
- a slat actuating mechanism comprising a substantially circularly curved carrier track means having a forward end to which the slat is mounted with a substantially fixed angular orientation relative to said track means.
- the track means has an arcuate lengthwise track axis extending in a substantial curve along said track means.
- the track means is mounted for movement along the track axis from a rear track position where the slat is positioned in the first cruise position, to an intermediate track position where the slat is positioned in the second intermediate position, and a forward track position where the slat is located in the third high lift position.
- the track means has a track structural and operating envelope having a maximum width dimension generally perpendicular to the lengthwise axis and a maximum length dimension extending along the lengthwise track axis.
- the track means is arranged relative to the outer surface contour envelope of the fixed wing in a manner that in the cruise position, the track structural envelope is positioned substantially entirely within the outer surface contour envelope of the fixed wing.
- the lengthwise axis of the carrier track means has a center of curvature for the track means.
- the trailing edge of the slat has three trailing edge point locations at the first, second, and third positions of the slat that define a trailing edge arcuate path of travel for the trailing edge of the slat, which trailing edge arcuate path has a center of curvature for the slat trailing edge path of travel.
- a leading edge point of the slat has three leading edge point locations at the first, second and third positions of the slat.
- the three leading edge locations of the slat define a leading edge arcuate path of travel having a center of curvature of the path of travel of the leading edge of the slat.
- the slat/fixed wing combination is arranged so that the center of curvature of the track, the center of curvature of the slat trailing edge path of travel, and the center of curvature of the slat leading edge path of travel are all coincident.
- the slat trailing edge is positioned in sealing relationship with the concealed forward nose and upper surface portion.
- the slat in the second intermediate position has its trailing edge spaced from the concealed forward nose and upper surface portion to form an aerodynamic take-off/climb position gap.
- the gap closure means is arranged so that with the slat in the second position, the gap closure means closes a portion of the aerodynamic take-off/climb gap at the location of the slat actuating mechanism.
- the gap closure means there is a raised surface portion of the concealed forward nose and upper surface portion of the fixed wing.
- the gap closure means comprises an extension of the slat at the slat trailing edge at the location of the actuating mechanism.
- the slat/fixed wing combination has vertical thickness dimensions extending from a lower exposed surface of the slat/fixed wing combination to the forward and upper surface portion of the slat.
- the leading edge portion of the fixed wing is configured to have vertical thickness dimensions extending from the lower surface of the slat/fixed wing combination upwardly to the concealed forward nose and upper surface portion of the fixed wing, in a manner that the vertical thickness dimensions of the forward portion of the leading edge portion of the fixed wing is greater than corresponding vertical thickness dimensions at corresponding locations of prior art slat/wing combinations of Boeing 727, 737, 757 and 767 airplanes made prior to September 1, 1993.
- the nose surface portion of the forward and upper concealed portion of the fixed wing is positioned forwardly relative to a lengthwise dimension of the slat, in comparison to the slat/wing combinations of the Boeing 727, 737, 757 and 767 airplanes.
- the leading edge portion of the fixed wing has a horizontal lengthwise dimension extending from a most forward nose surface portion of the leading edge portion of the fixed wing in a cordwise direction to a location of the trailing edge of the slat in the first cruise configuration.
- the vertical thickness dimension of the fixed wing at the first vertical thickness location is no greater than about 76% of the vertical thickness dimension of the slat/fixed wing combination at the first vertical thickness location.
- a second vertical thickness dimension of the fixed wing is 25% rearwardly of the most forward nose surface portion, and is at least as great as 77%, and no greater than 83% of the total vertical thickness dimension at that location.
- the concealed forward nose and upper surface portion of the fixed wing is shaped aerodynamically so that with the slat in the third high lift position, pressure over the concealed forward nose and upper surface portion is at a peak negative pressure at a most forward location of the concealed forward nose and upper surface portion, and is at a lower negative pressure peak at a most rear location of the concealed forward and upper surface portion.
- pressure over the concealed forward nose and upper surface portion is at a peak negative pressure at a most forward location of the concealed forward nose and upper surface portion, and is at a lower negative pressure peak at a most rear location of the concealed forward and upper surface portion.
- the concealed forward nose and upper surface portion of the fixed wing is shaped aerodynamically so that with the slat in the third high lift position, pressure over the concealed forward nose and upper surface portion is at a peak negative pressure at a most forward location of the concealed forward nose and upper surface portion, and is at a lower negative pressure peak at a most rear location of the concealed forward and upper surface portion.
- the negative pressure curve over the concealed forward nose and upper surface portion at the halfway location drops below the negative pressure at the rear most location of the concealed forward nose and upper surface portion.
- a slat/fixed wing combination comprising the main components described above, namely a fixed wing, a slat having the three operating positions, and the slat actuating mechanism.
- the method then comprises defining for the concealed forward nose and upper surface portion a design tolerance envelope within which the concealed forward and upper surface portion can be positioned and contoured for proper performance.
- the method comprises the finding for each of the leading edge and trailing edge of the slat design tolerance envelopes in which the leading edge and trailing edge of the slat can be positioned in the first, second and third positions.
- the carrier track means is positioned in a manner that a center of curvature of the track axis is at a center location area and the track structural and operating envelope is located within the fixed wing outer contour envelope. Then the slat is so positioned that in being moved by the carrier track means from the first to the second and to the third positions, both the leading edge and the trailing edge of the slat are within their respective design tolerance envelopes at the first, second and third positions, and the arcs defined by the paths of travel of the leading edge and the trailing edge of the slat have centers of rotation within the center location areas and coincident with the center of the track axis.
- the concealed forward and upper surface portion of the fixed wing is contoured within its design tolerance envelope in a manner to provide proper aerodynamic performance of the slat/fixed wing combination with said slat in the first, second and third positions.
- this overall concept of the airplane shows sufficient promise, then it is given to a design group (sometimes called "preliminary design” or “product development”) to arrive at a general configuration of an airplane that would match this broad concept of the desired airplane.
- the finished product that would come out of this preliminary design group would identify the overall configuration and components of the airplane, and also its basic aerodynamic contours.
- the basic aerodynamic configuration of the wing in its cruise configuration would be identified, and the arrangements of the leading and trailing edge devices would also be identified at least in outline form. More specifically, the basic contour of the leading edge device would be specified, and then its position relative to the fixed wing would also be identified for different operating positions. Also, a certain amount of aerodynamic analysis and wind tunnel testing would have been done to arrive at these optimized designs.
- the slat was carried forwardly and downwardly, with the downward component of travel increasing as the slat was moved further outwardly from the fixed wing.
- the slat was fixedly attached to the carrier track so as to have a fixed angular orientation relative to the track.
- the trailing edge of the slat formed a gap with the fixed wing.
- each leading edge device 14 comprises a slat 20 having a leading edge 22, a trailing edge 24, and an upper aerodynamic surface 26 extending from the leading edge 22 to the trailing edge 24.
- the actuating system for each slat 20 comprises two carrier track assemblies 28 (one of which is shown in Figure 2) and two auxiliary track assemblies 30 (one of which is shown in Figure 3).
- the carrier track assemblies 28 function to move the slat 20 from the cruise configuration to the take-off position and also to the high lift position for landing.
- the auxiliary track assemblies 30 function to control the slant of the slat 20 at its various locations. More specifically, the auxiliary track assemblies 30 function to rotate the slat 20 to a greater downward slant as the slat 20 moves into its high lift position in a manner to move the trailing edge 24 further away from the fixed wing so as to properly form a slot 32.
- the carrier track assembly 28 comprises an arcuately curved carrier track 34 which in the preferred embodiment is circularly curved.
- This track 34 is positioned by a pair of upper rollers 36 and a pair of lower rollers 38.
- the track 34 is moved along its lengthwise axis by means of a pinion gear 40.
- the forward end of each carrier track 34 is pivotally connected at 41 to the slat 20.
- the carrier track 34 comprises an elongate beam structure 42 which defines a downwardly facing elongate U shaped slot 44, in which is positioned a gear rack 46.
- This gear rack 46 is held in place by a plurality of bolts 48 and corresponding nuts 50.
- At the forward end of the beam structure 42 there is a connecting portion 54 which provides the pivot connection 41 with the slat 20.
- FIG. 3 shows the prior art auxiliary track assembly 30.
- This auxiliary track assembly 30 comprises a fixed auxiliary track structure 56 mounted to the forward spar 58 of the fixed wing 12 and a movable arm 60.
- This movable arm 60 has its forward end fixedly attached at 62 to the slat 20 (this being accomplished by being attached at upper and lower connecting locations 64).
- At the rear end of the arm 60 there is a roller 66 (only the pivot location of this roller being shown in Figure 3) that moves in a contoured guide slot 68 defined by the aforementioned fixed track structure 58.
- the rear portion 70 of the guide slot 68 is circularly curved and extends downwardly at a curved forward and downward slant.
- the end portion 72 of the slot 68 departs from this circular curve so as to extend more forwardly and closer to a horizontal slant.
- the slat 20 is shown at the intermediate take-off and climb position, and it can be seen that at this location, the roller 66 has moved almost entirely through the rear guide slot portion 70 and is about to enter into the end guide slot portion 72.
- the effect of this is that as the flap is moved further toward the landing position, the rear end of the arm 60 moves in an upward and forward direction relative to the arc of the carrier track 34 so as to rotate the slat 20 about the pivot connection 41 of the carrier track 34 with the slat 20.
- the effect of this is to cause the leading edge 22 of the slat 20 to drop further downwardly and rearwardly, while raising the trailing edge 24 of the slat 20 further away from the forward upper surface portion 74 of the fixed wing 12.
- the basic design of the overall wing is dictated primarily by the desired aerodynamic contour for cruise configuration and also by structural considerations.
- the next consideration is then arriving at a configuration of the leading and trailing edge devices to be compatible with the aerodynamic and structural requirements for cruise configuration, and the optimized deployment positions of the leading and trailing edge devices for the various operating modes (i.e. the take-off and climb mode and the high lift landing mode primarily).
- One of the serious constraints is that the actuating mechanism for the leading and trailing edge devices would desirably fit totally within the contour of the outer envelope of the fixed wing, as dictated by the aerodynamic considerations at cruise. While this has in many instances not been possible with the trailing edge devices, this was successfully accomplished at least for the leading edge devices by the actuating mechanisms illustrated in Figures 1 through 4.
- Figures 5 through 10 illustrates a first embodiment of the present invention.
- the essence of the present invention is the recognition that there are various design elements or components in the fixed wing structure and in the leading edge slat assembly which, if combined properly, result in geometric relationships that dictate the movement of the actuating mechanism for the slat, such that by combining these with aerodynamically related elements within certain parameters to maintain a reasonably optimized design, the actuating system can in turn be simplified and improved.
- the slat/fixed wing combination of the present invention is generally designated 100 and comprises a fixed wing 102 and a slat assembly 104.
- the slat assembly comprises a leading edge slat 106 and two slat actuating assemblies 108.
- the basic configuration of the fixed wing 102 is, or may be of conventional design, and it comprises a leading edge portion 110, a trailing edge portion (not shown for ease of illustration) and upper and lower aerodynamic surfaces 112 and 113, respectively.
- the slat 106 has a leading edge 114, a trailing edge 116, and an upper aerodynamic surface 118 extending from the leading edge 114 to the trailing edge 116.
- the slat 106 has a lower outer surface portion 120 which extends from the leading edge 114 a short distance rearwardly. In the cruise configuration of Figure 5, the lower surface portion 120 of the slat 106 forms a substantially continuous lower aerodynamic surface with the fixed wing lower surface 113.
- Each slat actuating assembly 108 comprises a main carrier track 122 which extends along an arcuate, circularly curved carrier track axis 124.
- each actuating assembly 108 further comprises a pair of upper rollers 126 and a pair of lower rollers 128 positioned on upper and lower sides of the carrier track member 122, respectively.
- a pinion gear 130 To drive the carrier track 122, there is provided a pinion gear 130, which is positioned on the lower or upper side of the track 122 and which engages teeth extending along the lower or upper side of the carrier track 122.
- the carrier track 122 may, as in the prior art track of Figure 4, be made up of a separate beam structure and associated gear rack such as shown at 42 and 46, respectively, in Figure 4.
- the leading edge location 114 of the slat 106 shall be considered as that location where the cord length of the slat/wing combination 100 meets the front surface of the slat 106, when the slat 106 is in the cruise configuration.
- the cord length shall be considered the maximum distance between the nose surface of the slat 106 in its cruise configuration to the farthest most trailing edge location of the entire wing combination with the trailing edge device in its cruise position.
- the upper fixed wing surface 112 can be considered as having a concealed surface portion 132 comprising a front end nose concealed surface portion 134 and an upper concealed surface portion 136 extending rearwardly from the surface portion 134.
- the slat trailing edge 116 is positioned immediately adjacent to, and in contact with, the upper fixed wing surface 112 at a transition line 138 where the upper concealed surface portion 132 of the fixed wing meets a rear upper main surface portion 140, which is that portion of the upper portion 112 that extends rearwardly from the transition line 138.
- the upper aerodynamic surface 118 of the slat 106 forms a substantially continuous upper aerodynamic contour with the fixed wing upper main wing surface portion 140.
- the intermediate take-off and climb position of the slat 106 is illustrated in Figure 6. It can be seen that the carrier track 122 has moved forwardly to a position where the trailing edge 116 of the slat 106 is located at a second transition line 142 where the forward concealed portion 134 of the upper concealed contour 132 meets the rear concealed upper surface portion 136 of the fixed wing 102. In this position, the upper slat surface portion 118 forms a substantially continuous aerodynamic contour with the rear concealed surface portion 136 (with the surface portion 136 being exposed in the take-off and climb configuration of Figure 6), and with the surface portion 136 in turn making a substantially aerodynamic contour with the rear main wing surface upper portion 140. Also, it can be seen that the leading edge location 114 of the slat 106 has been moved forwardly and downwardly from the cruise position of Figure 5.
- Figure 7 shows the slat 106 in its high lift landing position. It can be seen that the carrier track 122 has been moved further along its axis 124 so that the slat 106 has moved forwardly and downwardly from the position of Figure 6. Further, it can be seen that the slat trailing edge 116 has been moved out of contact with the concealed upper surface portion 132 so as to be spaced from the forward main wing surface portion 134 so as to form a slot 146 therewith. It can be seen that with the slat 106 being fixedly attached to the carrier track 122, the angular orientation of the slat 106 relative to the carrier track 122 has not changed.
- the lengthwise axis 124 of the carrier track 22 has a radius of curvature having a center indicated at 146, with two radii lines being shown at 147.
- the track member moves so that the axis 124 remains along an arc having a center point 146 as its center of rotation.
- the trailing edge 116 of the slat 106 forms a second radius 148 extending from the edge 116 to the center 146.
- the trailing edge 116 has moved to a position adjacent to the second transition line 142, and the radius line 148 extends from the point at the trailing edge 116 to the center point 146.
- Figure 8 there is shown the surface contour of the concealed surface portion 132 of the fixed wing 102 of the present invention in solid lines, and in broken lines the concealed surface contour 132a that is typical of the prior art configurations of the system described with reference to Figures 1 through 4. It can be seen that the furthest leading edge location 160 has been moved forwardly from the corresponding location 160a of the prior art. Further, the forward concealed nose surface portion 134 has been moved upwardly and forwardly from the corresponding surface portion 134a of the prior art.
- the second transition line 142 has been moved upwardly from the corresponding location 142a of the prior art contour.
- the surface contour 136 extends rearwardly to the corresponding location of the prior art contour so that these coincide as they extend toward the rear transition line 138 and on to the upper surface contour 140. (More specifically the forward part of the concealed surface portion 136 is spaced upwardly from the surface portion 136a of the prior art, but becomes coincident with the prior art surface at the surface area indicated at 136c.
- Figures 9A through 9D show the aerodynamic contours of the typical prior art slat/fixed wing combination of the prior art in solid lines, the combination of the present invention in broken lines, and an alternative configuration shown in dotted lines, with all of these being in the high lift position.
- Figure 9C shows the pressure distribution over the aerodynamic contours of the fixed wings.
- Figure 9D illustrates the pressure distribution over the slats.
- the configurations of each of the three slats shown in Figure 9B are essentially the same, and they differ in that they are positioned at different locations relative to the contour of their associated fixed wings.
- the fixed wing contour of the concealed surface portion 132a of the prior art shown in Figure 9A follows more or less an expected aerodynamic contour where the pressure curve 162 in Figure 9C reaches a peak at 164 and then declines as the airflow continues rearwardly, as at 166.
- the pressure curve resulting from the optimized contour 132 of the concealed surface portion of the present invention, as indicated by the broken line 170 of the graph of Figure 9C is rather different.
- the pressure over this contour 168 reaches an early peak at 172, declines sharply toward a mid-location at 174, and then reaches a second peak at 176 which is at the back end of the concealed surface portion of the fixed wing.
- Figure 10 illustrates the performance of the three slat/wing arrangements of Figures 9A/9B.
- the horizontal axis denotes the lift over drag ratio of the slat/wing arrangement in its takeoff configuration.
- the vertical axis denotes the maximum lift coefficient in the landing position where the slat is fully deployed in the landing configuration. The reason for this arrangement in the graph of Figure 10 is that the lift over drag ratio is generally more critical during takeoff, while the maximum lift coefficient is generally a more critical consideration for the landing configuration.
- each of the slats is positioned, relative to its associated fixed wing, so that in the take-off configuration the trailing edge of the slat leaves no gap so that it is positioned directly against the adjacent fixed wing surface.
- One set of lift over drag values for takeoff and also the maximum lift coefficient values for each of the fixed wing/slat configurations of Figure 9B are shown at the right hand markings of the graph of Figure 10, these being for the configuration where there is no slat gap at take-off.
- the values (i.e. data points) for the preferred configuration of the present invention are indicated by triangles in Figure 10 and the triangles are interconnected by the broken line 186 (corresponding to the broken line configuration shown in Figures 9A/9B).
- the data points for the prior art configuration shown in solid lines in Figures 9A/9B are connected by a corresponding solid line 194 in the graph of Figure 10, and the three data points are indicated each by a circle.
- the data points showing the performance of the configuration at 180 in Figures 9A/9B are shown by a corresponding dotted line in the graph of Figure 10, with the data points being each indicated by a square. It can be seen from the graph of Figure 10 that the overall performance of the present invention is superior to the overall performance of the other two configurations.
- the data point 188 indicates along the horizontal axis the lift over drag ratio in the takeoff configuration, and indicates along the left hand vertical axis the maximum lift coefficient in the landing configuration.
- the data point at 188 gives the values in the arrangement where in the takeoff configuration there is no gap formed between the slat and the fixed wing structure.
- the next data point 190 for the present invention is for an arrangement where the arcuate path of travel of the slat is swung upwardly slightly so that when the flap moves from the stowed position to the takeoff position, a relatively small gap is formed in the takeoff configuration.
- the connecting line for the prior art configuration shown in full lines in Figures 9A/9B is indicated at 194, and its three data points are indicated at 196, 198 and 200.
- the data point at 196 indicates performance where the movement of the slat is such that no gap is formed at takeoff.
- the lift over drag ratio for takeoff configuration (at point 196) is substantially the same as that of the present invention (indicated at 188).
- the maximum lift coefficient on landing is less.
- Performance in the arrangement where there is a relatively small gap is shown at 198 and for a yet larger gap is shown at 200. It can be seen that while there was an improvement in maximum lift coefficient at landing, there was a substantially penalty in lift over drag ratio at take-off.
- the third graph line or connecting line 202 indicates performance of the less preferred configuration indicated in dotted lines at 180 in Figures 9A/9B.
- the three data points are given at 204, 206 and 208, and these indicate, respectively, first the no slotted take-off configuration, second the take-off configuration with a smaller slot, and finally the take-off configuration with the larger slot. It can be seen that performance was worse than for the corresponding positions of the prior art configuration (graph line 194) and the present invention (graph line 186).
- the contouring of the optimized configuration of the present invention illustrated at 132 in Figure 8 and 9A, in producing the double peak pressure (the peaks being shown at 172 and 176) provides some benefit in the present invention in that it allows the landing slat height to optimize at a higher height than is optimum with a single peak design.
- This higher height is a direct benefit in the present invention in that it accomplishes zero penalty for the present invention, while providing other benefits in simplification and eliminating gaps or openings in the fixed leading edge to accommodate the auxiliary positioning tracks.
- the double peak pressure distribution on the surface of the fixed wing is optimized for swept wings of commercial aircraft at flight Reynolds numbers where the leading edge flow is completely turbulent.
- the double peak minimizes the tendencies for the pressures to spike up at high wing angles of attack, which is detrimental in terms of stall progression.
- the initial front peak at 172 allows a reduced pressure recovery over the secondary peak region 176 which is favorable toward the turbulent flow field.
- the front peak 172 raises the trailing edge pressure on the slat and allows it to operate at a reduced slat height without penalty.
- the pressure distribution on the fixed surface contour 132 is designed to produce a more optimized pressure distribution for a single pivot slat operating in the landing configuration of Figure 7.
- the flow field on the leading edge of the fixed wing for flight Reynolds numbers results in a turbulent attachment line on the leading edge.
- the turbulent boundary layer benefits from a pressure distribution which is front loaded to minimize boundary layer growth on the upper surface.
- the front peak is rounded so that a leading edge spike does not form at higher angles of attack. This produces a more gentle stall characteristic.
- the secondary peak is a result of faring into the slat lower surface contour and is constrained by the structural minimums for the slat trailing edge.
- the maximum height of the first pressure peak is configuration dependent so that the stall progression does not jump to the first peak prior to reaching the maximum angle of attack.
- An added feature of the front loaded concept, as described above, is a reduced tendency for a leading edge spike to form relative to a triangular pressure distribution. This allows margin for potential thinning of the wing or positioning of the fixed surface of the fixed wing at a more forward location which adds Fowler motion and improves the maximum lift on the system.
- Figure 11 there is shown somewhat schematically an outline of the nose portion and upper aerodynamic surface of the leading edge slat, and the outer surface contour of the forward part of the fixed wing.
- the overall configuration shown in Figure 11 (and also in Figures 12 through 16) approximates a configuration suitable for use in the present invention.
- the type of representation shown in Figure 11 has often been the overall design outline which is given by the product development or preliminary design group to the "project” to implement this configuration into actual hardware.
- the overall wing configuration (made up of the fixed wing plus the leading and trailing edge devices in their stowed position) is determined.
- This cruise configuration is the starting point or base line from which other design features are determined.
- the next step is to take this basic wing configuration and carve it up into leading and trailing edge devices which are to be deployed for the takeoff and climb configuration, and also for the landing configuration.
- leading and trailing edge devices which are to be deployed for the takeoff and climb configuration, and also for the landing configuration.
- this must be accomplished in a manner that when these leading and trailing edge devices are stowed, the outside aerodynamic contour coincides with the basic overall cruise wing aerodynamic contour.
- the leading and trailing edge devices are positioned in their desired locations for optimized performance for the take-off position and for the landing position.
- the carrier track 122 functions as a beam carrying the aerodynamic loads on the slat it must have at least a certain minimum vertical thickness dimension. Beyond this, there must be support mechanisms for the carrier track, such as the rollers 126 and 128, and also a drive means such as the pinion gear 130. From this design data, we arrive at a slat actuating envelope which must fit within the envelope defined by the outer surface contours of the fixed wing.
- a "design envelope” 209 is indicated in Figure 11. This envelope defines the range within which the centerline 124 of the carrier track 122 could be located with the flap actuating mechanism 208 still fitting with the envelope of the outer aerodynamic contour of the fixed wing.
- This envelope 209 is drawn somewhat schematically, and the actual thickness dimension and configuration is not intended to be shown as a precise representation. However, for purposes of the present analysis, this representation shown at 209 In Figure 11 will be adequate.
- the point C1 represents the center of the curvature for an arc drawn through the center of the zone 209.
- the point C2 represents an arc drawn along the top edge of the zone shown at 209, and the point C3 represents the center of curvature for an arc at the lower boundary of the zone 209. It immediately becomes evident that the forward to rear dimension within which the center of curvature can be moved is relatively small.
- these center points C1, C2 and C3 can be raised or lowered, depending upon the tolerance of the angular positioning of the leading edge slat in its fully deployed landing position, compared to its angular position in the stowed location. From this, we arrive at a zone 210 which would define the possible centers of curvature for various arcuate configurations of the centerline of the carrier track 122. Again, this zone 210 is represented in Figure 11 simply for purposes of illustration, and is not intended to be an accurate representation of the size or shape of the zone which would be practical for a given airplane design. Of course, it is also understood that the size and configuration of this zone 210 would vary depending upon the overall design parameters of the airplane.
- the point 211 in Figure 11 represents the location of the trailing edge of the slat in the stowed cruise configuration, and the vertical location of this point 211 is substantially fixed by the overall wing configuration. Also, the farthest rearward location of the point 211 is determined in large part by the location of the front spar. Since the front spar is a load carrying member subjected to substantial force, it is desirable that its height dimension be as great as possible, and if the trailing edge of the slat were moved over the front spar, this would necessitate the vertical dimension of the spar being diminished. The point 211 could be moved further forward, but this would reduce the overall length of the slat and thus decrease the possible Fowler motion.
- the nose location 212 of the slat is substantially fixed by the overall configuration of the wing in cruise configuration, as is the upper aerodynamic slat surface 214.
- the tolerance zone is identified by the letters A,B,C, and D, and this tolerance zone is shaded in Figure 11.
- the forward location at "A” is largely limited by structural design considerations for the nose portion of the slat. In other words, if this limit line at "A” is pushed too far forwardly, there is not enough room within the slat nose portion to provide proper structural support and other requirements for this area (e.g. deicing, etc.). Also, the radius of the aerodynamic contour can be a limiting factor.
- the rear limit in the design tolerance zone, indicated at "B” is determined by aerodynamic considerations, and also by the location of this surface relative to the slat trailing edge in the fully deployed landing position. Also, there are design considerations relative to the slat actuating mechanism.
- the wings for subsonic commercial transports are commonly tapered in an outboard direction, but for cost reasons it is sometimes desirable to make the inboard and outboard slat deployment mechanisms identical. This would mean that relative to the overall sizing of the aerodynamic contours at the outboard end, there would possibly be a greater gap for a given amount of Fowler motion. If there is a certain amount of tolerance in this aerodynamic gap or slot in the high lift configuration, then a savings can be realized by using duplicate slat deployment mechanisms at the outboard and inboard portions of the slat.
- the design tolerance limit at "C” is determined at least in part by the minimum slat wedge thickness that is required. Also, it is limited aerodynamically relative to the pressure peak on the upper fixed wing surface.
- the lower limit "D" of the surface contour 215 is determined by a number of factors, one of these being the sizing of the slat gap in the landing configuration relative to stall handling characteristics. In other words, the size of the gap may be tailored so that the stall will occur at a desired location at a certain angle of attack and speed in the landing configuration. Another factor is that the contour of the concealed surface portion of the fixed wing must be aerodynamically aligned with the rest of the upper fixed wing surface.
- one of the important features of the preferred embodiment of the present invention is that the configuration of the nose and forward upper surface portion of the fixed wing is modified from the prior art configuration in a manner to help achieve the design goals of this first embodiment. This was described previously in this text relative to Figure 8, and will be described further later herein with reference to Figures 18-20.
- Figure 12 shows the slat in the high lift takeoff position, with the trailing edge of the slat indicated at 216.
- the design tolerance zone for the location of this line 216 is indicated in the shaded area of Figure 12.
- the forward location "E” is limited by the need to prevent inflection in the slat's surface junction with the aerodynamic surface of the fixed wing.
- the upper aerodynamic surface portion 214 of the slat should be aligned as closely as possible with the fixed wing upper surface portion immediately behind.
- the rear limit "F” is limited in that it is desired to get adequate Fowler motion for the takeoff configuration, and therefore, this location “F” should be as far forward as possible, without compromising other design considerations.
- the height limits of the zone of the point 216 of Figure 12 are indicated by the letters "G” and "H”. This tolerance dimension is dependant upon at least two things. First, as indicated with reference to Figure 11, it is possible to change the surface contour of the fixed wing, as indicated in the limits "C” and “D” in Figure 11, and this would of course vary the position of the point 16 if the trailing edge 216 is in contact with the fixed wing upper surface. Also, the design tolerance limit of point 216 could be moved upwardly if a gap is to be formed in the intermediate takeoff and climb position of the slat.
- Figure 13 illustrates the flap in its high lift landing configuration. It will be seen that in addition to showing the tolerance design zone defined by letters “A” through “D”, there is also shown a design tolerance zone for the trailing edge location 220, this zone being defined by the letters “L”, “K”, “M” and “N”. The forward to rear tolerance location is defined by the letters “L” and "K”, and these in large part determine the slot width. Normally the width of the slot at high lift would be between one percent to four percent of the cord length of the total wing in the cruise configuration. The tolerance zone for the Point location 220 is also determined by the configuration of the nose surface of the fixed wing. In other words, if the configuration of the fixed wing is moved to its furthest rear limits indicated at "B” and “D”, then this tolerance zone for the point 220 would be moved rearwardly, and vice versa.
- the limits of the height for the trailing edge location 220 is indicated by the letters "M" and "N". Normally this height tolerance would be no greater than two percent of the cord length of the wing. If this location 220 is at too low of a position, then the flow through the slot and over the more tightly curved nose portion of the fixed wing would be more exposed to the main air stream, and this would not be desirable. Also, there is an angular tolerance of the forward slat nose location 222 in the high lift position, indicated at "p" so that some deviation in the angular position of the slat could be tolerated, relative to the trailing edge location 220.
- Figure 16 the slat/wing combination as shown in Figure 5 is duplicated.
- the center of curvature of the carrier track 122 is shown at C6.
- the three selected positions of the slat 106 are illustrated in Figure 16, as shown in Figure 15.
- the center of rotation of the arc defined by the leading edge points 212, 218 and 222 is shown at C5, and the arc defined by these points 212, 218 and 222 is shown at 236.
- the centers C5 and C6 do not coincide, and it is evident that some design adjustments must be made.
- a radius line 238 is drawn from the center point C6 of the track 122 to the slat nose location at 212 in the stowed position. Then an arc 240 is drawn from the point 212 downwardly to a location adjacent to the slat leading edge location 222. It can be seen that the arc 240 extends outside the arc 236. The distance between the arcs 236 and 240 at the location of the point 222, is indicated at 242.
- an arcuate path of travel would be established for the trailing edge of the slat by beginning at point 211, using C1 as a center of rotation, and then passing an arc through the tolerance zone EFGH for the point 216 (see in Figure 12) and also in the tolerance zone KLMN for the point 220, as shown in Figure 13. If this could be accomplished, then there is no need to move from the center of rotation of C1. If this cannot be accomplished, then the center of rotation for the slat trailing edge could be adjusted somewhat within the zone 210 of Figure 11 to find an arcuate path of travel beginning from the point 211 through the two design tolerance zones for the trailing end locations 216 and 220. If this cannot be accomplished, then the basic design and the tolerance zones for the design could be adjusted to provide for the coincident centers of rotation/curvature of the slat trailing edge and the slat track.
- the design can be fine tuned to move the locations within the design tolerance zones to optimized locations. For example, this has been done relative to the configuration of the first embodiment shown in Figures 5 through 7, and it was found that the values indicated at 188, 190 and 192 of the graph of Figure 10 could even be improved further.
- the design tolerance zones could be established in gradients where there is an inner more preferred zone, an outer less preferred zone, and so forth.
- this same technique can be used to accommodate other design considerations, which may be structural, or which could possibly deal with positioning of other components in this area of the airplane.
- FIG 17 shows the same prior art slat wing combination illustrated in Figure 2.
- C7 the center of curvature for the carrier track 32, and two radius lines 250 and 252 are shown.
- the nose location 22 of the flap 20 is shown at its three different positions (i.e. cruise, takeoff and landing), and the center of arc defined by the three locations of the slat nose point 22 was determined and by using the same method as described with reference to Figure 14.
- the center of curvature was found to be located at C8.
- Figures 18 and 19 there is shown in outline a representation of the outer surface of the forward portion of the fixed wing 102 and of the slat 106.
- the longitudinal dimension is somewhat shorter relative to the vertical dimension.
- the nose portion of the fixed wing 102 in Figure 18 looks somewhat more blunt than what is illustrated in Figures 5 and 8.
- a horizontal distance is determined from the farthest forward nose portion 160 at the leading edge 110 of the fixed wing 102 to the location of the trailing edge 116 of the slat 106 in the stowed configuration. Then percentage increments are given along the longitudinal axis of both Figures 18 and 19. It can be seen in both Figures 18 and 19 that these are given at 12.5%, 25%, 50%, 75% and 100%. Then at each of these longitudinal locations, there is determined two vertical thickness dimensions.
- the vertical thickness dimension of the fixed wing leading edge portion is measured from the lower surface 113 of he fixed wing (or from the lower of the combined slat/fixed wing if the slat has a lower surface portion extending rearwardly along the lower part of the fixed wing) to the upper surface 132 of the fixed wing. Then the vertical thickness of the combined wing at that location (the combined wing being the fixed wing plus the slat) is determined at each longitudinal location. Thus, for example, the vertical thickness of the combined wing at the 50% location is measured from the upper surface 118 of the slat 106 to the lower surface 113 of the fixed wing at that particular location. Then each vertical thickness dimension of the fixed wing alone at each longitudinal location is taken as a percentage of the total thickness of the combined slat/wing combination at each such location.
- the shaded area designated "new range” illustrates the preferred range of the vertical thickness dimension of the surface of the fixed wing as a percentage of total thickness at that same location. It can be seen that at the 12.5% longitudinal location, the preferred vertical thickness range is between approximately 62% or 63% to approximately 76%. At the 25% location, this vertical thickness dimension in the new range of the present invention is between about 77% to about 83% of the total vertical thickness at that location.
- FIG. 20 A second embodiment of the present invention is shown in Figures 20 through 22. Components of this second embodiment which are similar to those of the first embodiment will be given like numerical designations, with an "a" suffix distinguishing those of the second embodiment.
- the trailing edge 116 of the slat 106 is in contact with the concealed surface portion 132 of the fixed wing 102.
- the slat 106 there can be certain benefits in positioning the slat 106 so that it forms a gap during take-off and climb.
- the lift coefficient can be improved. However, this was done at the sacrifice of a decrease in lift-over- drag ratio.
- Figure 20 shows in outline the concealed surface portion 132a of the fixed wing 102a, and also shows an outline of the surface contour of a portion of the slat 106a in the high lift position.
- the outer surface portion of the slat 106a i.e. the upper aerodynamic surface 118a and the surface area in the vicinity of the slat leading edge 114a
- the outer surface portion of the slat 106a is the same as the slat outer surface contours of the slat 106 of the first embodiment.
- the components are arranged so that the arcuate path of travel of the slat 106a is moved upwardly to form a gap 300 (see Figures 21 and 22).
- the contour of the front edge nose concealed surface portion 134a is modified in the area of each carrier track 122a. This is done in a manner so that in the take-off and climb configuration, while the slot 300 is formed between the slat trailing edge 116a and the concealed surface portion 132a along most of the leading edge portions, the trailing edge 116a is sealed in the vicinity of the carrier track 122a. More specifically, with reference to Figures 21 and 22, it can be seen that the nose concealed surface area 134a is spaced from the trailing edge 116a to form the gap indicated at 300.
- the fixed wing nose surface contour at 302 has a raised central portion 304 that makes contact with the slat trailing edge 116a.
- the surface areas 306 are contoured to blend into the adjacent fixed wing/nose contour areas 308 that are not raised.
- the other surface portions around the raised surface portion 304 are also blended into the surrounding surface area for proper aerodynamic contouring. (For ease of illustration, only a portion of the carrier track 122a is shown in Figures 21 and 22.)
- the slat 106a is shown having been moved from the take-off and climb position to the fully deployed high lift position. It can be seen that the slat trailing edge 116a is spaced from both of the nose surface portions 304 and 308.
- the fixed wing concealed surface portion 132 is still set up to achieve a front loaded pressure distribution. This produces a landing height which is in the optimum range, and this second embodiment alleviates the problem of drag due to the actuating mechanism when the slat 106a is in the take-off/climb position.
- a third embodiment of the present invention is shown in Figures 23 through 25.
- Components of this third embodiment which are similar to the components of the other two embodiments are given like numerical designations with a "b" suffix distinguishing those of this third embodiment.
- This third embodiment is similar to the second embodiment in that the take-off and climb configuration, a slot or gap 300b is formed between the trailing edge 116b of the slat 106b and the fixed wing concealed surface 132b. As in the second embodiment, at the span-wise area of the carrier track 122a, this gap 300b is closed. This is accomplished by providing at the slat trailing edge 116b by providing a rearward extension 310 at the location of the carrier track 122b.
- the preferred means of accomplishing this would is to simply have the extension 310 fixedly attached to or made integral with the upper skin of the slat 106b, with the extension 310 arranged so that it blends into the surface contours of the upper fixed wing surface in the cruise position.
- An alternative would be to provide the extension 310 so as to have a stowed position within the trailing edge portion of the slat 106b so that it is concealed when the slat 106b is in its retracted cruise configuration, but is extended in the take-off/climb position.
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Claims (11)
- A slat/fixed wing combination, comprising:a. a fixed wing having a leading edge portion, an upper surface comprising a concealed forward nose and upper surface portion, and a main upper surface portion located rearwardly of the concealed forward nose and upper surface portion, and also a lower surface;b. a slat having a leading edge, a trailing edge, and a forward and upper surface portion extending from said leading edge to said trailing edge, said slat being mounted to said leading edge portion of the fixed wing in a manner to be movable between three positions, namely:i. a first cruise position where the slat is immediately adjacent to the fixed wing leading edge portion to conceal said concealed forward nose and upper surface portion;ii. a second intermediate takeoff/climb position where the slat is located forwardly of the cruise position, and the trailing edge of the slat is in contact with, or closely adjacent to, said forward concealed nose and upper surface portion; andiii. a third high lift position where the slat is moved forwardly and downwardly from the second position with the trailing edge of the slat forming an aerodynamic high lift position gap with the leading edge portion of the fixed wing;c. said fixed wing having a fixed wing outer contour envelope contained within said upper and lower surfaces of said fixed wing;d. a slat actuating mechanism comprising a substantially circularly curved carrier track means having a forward end to which the slat is mounted with a substantially fixed angular orientation relative to said track means, said track means having an arcuate lengthwise track axis extending in a substantial curve along said track means, said track means being mounted for movement along said track axis from a rear track position where the slat is positioned in the first cruise position, to an intermediate track position where the slat is positioned in said second intermediate position, and a forward track position where the slat is located in said third high lift position;e. said track means having a track structural and operating envelope having a maximum width dimension generally perpendicular to said lengthwise track axis and a maximum length dimension extending along said lengthwise track axis, said track means being arranged relative to said outer surface contour envelope of said fixed wing in a manner that in the cruise position the track structural envelope is positioned substantially entirely within the outer surface contour envelope of the fixed wing,
wherein the lengthwise axis of the carrier track means has a center of curvature for said track means, said trailing edge of the slat has three trailing edge point locations at said first, second and third positions of the slat that define a trailing edge arcuate path of travel for the trailing edge of the slat, which trailing edge arcuate path has a center of curvature for the slat trailing edge path of travel, and a leading edge point of said slat has three leading edge point locations at the first, second and third positions of the slat, and the three leading edge locations of the slat define a leading edge arcuate path of travel having a center of curvature of the path of travel of the leading edge of the slat,
characterized in that the center of curvature of the track, the center of curvature of the slat trailing edge path of travel, and the center of curvature of the slat leading edge path of travel are all coincident. - The slat/fixed wing combination as recited in claim 1, wherein with the slat in the second intermediate positions, said trailing edge of the slat is positioned in sealing relationship with said forward nose and upper concealed surface portion.
- The slat/fixed wing combination as recited in claim 1 or 2, wherein the leading edge portion of the fixed wing has a horizontal lengthwise dimension extending from a most forward nose surface portion of the leading edge portion of the fixed wing in a cordwise direction to a location of the trailing edge of the slat in the first cruise configuration, and there is a first vertical thickness dimension of the fixed wing at a first vertical thickness location which is spaced from the most forward nose surface portion rearwardly 12.5% of the lengthwise distance, said first fixed wing vertical dimension being at least as great as 63% of the total vertical thickness dimension of the slat/wing combination at said first vertical thickness location.
- The slat/fixed wing combination as recited in claim 3, wherein the vertical thickness dimension of said fixed wing at said first vertical thickness location is no greater than about 76% of the vertical thickness dimension of the slat/fixed wing combination at said first vertical thickness location.
- The slat/fixed wing combination as recited in claim 3, wherein the leading edge portion of the fixed wing has a horizontal lengthwise dimension extending from a most forward nose surface portion of the leading edge portion of the fixed wing in a cordwise direction to a location of the trailing edge of the slat in the first cruise configuration, and there is a second vertical thickness dimension of the fixed wing at a second vertical thickness location which is spaced from the most forward nose surface portion rearwardly 25% of the lengthwise distance, said first fixed wing vertical dimension being at least as great as 77% of the total vertical thickness dimension of the slat/wing combination at said first vertical thickness location.
- The slat/fixed wing combination as recited in claim 5, wherein the vertical thickness dimension of said fixed wing at said first vertical thickness location is no greater than about 83% of the vertical thickness dimension of the slat/fixed wing combination at said first vertical thickness location.
- The slat/fixed wing combination as recited in claim 1-6, wherein the concealed forward nose and upper surface portion of the fixed wing is shaped aerodynamically so that with the slat in the third high lift position, pressure over the concealed forward nose and upper surface portion is at a peak negative pressure at a most forward location of said concealed forward nose and upper surface portion, and is at a lower negative pressure peak at a most rear location of said concealed forward and upper surface portion, and the pressure drop over the forward half of the concealed forward and upper surface portion is greater than the pressure drop over the last half portion of the concealed forward and upper surface portion.
- The slat/fixed wing combination as recited in claim 7, wherein the negative pressure curve over the concealed forward nose and upper surface portion at said half-way location drops below the negative pressure at the rearmost location of the concealed forward nose and upper surface portion.
- The slat/fixed wing combination as recited in any of claims 1-8, further comprising:gap closure means located at a location of said slat actuating mechanism at said take-off/climb gap, said gap closure means being arranged so that with the slat in the second position, said gap closure means closes a portion of said aerodynamic take-off/climb gap at the location of the slat actuating mechanism.
- The slat/fixed wing combination as recited in claim 9, wherein said gap closure means comprises a raised surface portion of said concealed forward nose and upper surface portion of said fixed wing.
- The combination as recited in claim 9 or 10, wherein said gap closure means comprises an extension of said slat at said slat trailing edge at the location of the actuating mechanism.
Applications Claiming Priority (3)
Application Number | Priority Date | Filing Date | Title |
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US08/150,374 US5544847A (en) | 1993-11-10 | 1993-11-10 | Leading edge slat/wing combination |
US150374 | 1993-11-10 | ||
PCT/US1994/012687 WO1995013214A1 (en) | 1993-11-10 | 1994-11-03 | Leading edge slat/wing combination |
Publications (2)
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EP0728101A1 EP0728101A1 (en) | 1996-08-28 |
EP0728101B1 true EP0728101B1 (en) | 2000-08-23 |
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EP95900528A Expired - Lifetime EP0728101B1 (en) | 1993-11-10 | 1994-11-03 | Leading edge slat/wing combination |
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EP (1) | EP0728101B1 (en) |
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EP1231137A2 (en) † | 2001-02-12 | 2002-08-14 | The Boeing Company | Tailored wing assembly for an aircraft moveable slat system |
EP1231137B2 (en) † | 2001-02-12 | 2015-01-21 | The Boeing Company | Tailored wing assembly for an aircraft moveable slat system |
EP2116467A1 (en) * | 2008-05-06 | 2009-11-11 | Sonaca S.A. | Aircraft wing comprising a leading edge mobile flap shutter equipped with a follow-up rail with movement restricted according to an arc of circle trajectory |
BE1018114A5 (en) * | 2008-05-06 | 2010-05-04 | Sonaca Sociutu Anonyme | AIRCRAFT WING COMPRISING A MOBILE SHIP OF THE ATTACK EDGE EQUIPPED WITH A FOLLOWING FOLLOWING RAIL IN DISPLACEMENT ACCORDING TO A CIRCLE CIRCUIT TRACK |
Also Published As
Publication number | Publication date |
---|---|
WO1995013214A1 (en) | 1995-05-18 |
DE69425670T2 (en) | 2000-12-28 |
DE69425670D1 (en) | 2000-09-28 |
US5544847A (en) | 1996-08-13 |
EP0728101A1 (en) | 1996-08-28 |
AU8132394A (en) | 1995-05-29 |
US5839699A (en) | 1998-11-24 |
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